Nelson Richard S, Stewart C Neal, Gou Jiqing, Holladay Susan, Gallego-Giraldo Lina, Flanagan Amy, Mann David G J, Hisano Hiroshi, Wuddineh Wegi A, Poovaiah Charleson R, Srivastava Avinash, Biswal Ajaya K, Shen Hui, Escamilla-Treviño Luis L, Yang Jiading, Hardin C Frank, Nandakumar Rangaraj, Fu Chunxiang, Zhang Jiyi, Xiao Xirong, Percifield Ryan, Chen Fang, Bennetzen Jeffrey L, Udvardi Michael, Mazarei Mitra, Dixon Richard A, Wang Zeng-Yu, Tang Yuhong, Mohnen Debra, Davison Brian H
Noble Research Institute, LLC, Ardmore, OK 73401 USA.
BioEnergy Science Center (BESC), Oak Ridge National Laboratory, Oak Ridge, TN 37831 USA.
Biotechnol Biofuels. 2017 Dec 22;10:309. doi: 10.1186/s13068-017-0991-x. eCollection 2017.
The mission of the BioEnergy Science Center (BESC) was to enable efficient lignocellulosic-based biofuel production. One BESC goal was to decrease poplar and switchgrass biomass recalcitrance to biofuel conversion while not affecting plant growth. A transformation pipeline (TP), to express transgenes or transgene fragments (constructs) in these feedstocks with the goal of understanding and decreasing recalcitrance, was considered essential for this goal. Centralized data storage for access by BESC members and later the public also was essential.
A BESC committee was established to codify procedures to evaluate and accept genes into the TP. A laboratory information management system (LIMS) was organized to catalog constructs, plant lines and results from their analyses. One hundred twenty-eight constructs were accepted into the TP for expression in switchgrass in the first 5 years of BESC. Here we provide information on 53 of these constructs and the BESC TP process. Eleven of the constructs could not be cloned into an expression vector for transformation. Of the remaining constructs, 22 modified expression of the gene target. Transgenic lines representing some constructs displayed decreased recalcitrance in the field and publications describing these results are tabulated here. Transcript levels of target genes and detailed wall analyses from transgenic lines expressing six additional tabulated constructs aimed toward modifying expression of genes associated with wall structure (xyloglucan and lignin components) are provided. Altered expression of did not modify lignin content in transgenic plants. Simultaneous silencing of two was necessary to decrease G and S lignin monomer and total lignin contents, but this reduced plant growth.
A TP to produce plants with decreased recalcitrance and a LIMS for data compilation from these plants were created. While many genes accepted into the TP resulted in transgenic switchgrass without modified lignin or biomass content, a group of genes with potential to improve lignocellulosic biofuel yields was identified. Results from transgenic lines targeting xyloglucan and lignin structure provide examples of the types of information available on switchgrass lines produced within BESC. This report supplies useful information when developing coordinated, large-scale, multi-institutional reverse genetic pipelines to improve crop traits.
生物能源科学中心(BESC)的使命是实现基于木质纤维素的生物燃料高效生产。BESC的一个目标是降低杨树和柳枝稷生物质对生物燃料转化的抗性,同时不影响植物生长。为此,一个转化流程(TP)被认为是必不可少的,该流程用于在这些原料中表达转基因或转基因片段(构建体),以了解并降低抗性。为供BESC成员及后续公众访问而进行的集中数据存储也至关重要。
成立了一个BESC委员会来编纂评估基因并将其纳入TP的程序。组织了一个实验室信息管理系统(LIMS)来编目构建体、植物系及其分析结果。在BESC的头5年里,有128个构建体被纳入TP用于在柳枝稷中表达。在此,我们提供其中53个构建体以及BESC的TP流程的相关信息。其中11个构建体无法克隆到表达载体中用于转化。在其余构建体中,有22个改变了基因靶点的表达。代表某些构建体的转基因系在田间表现出抗性降低,此处列出了描述这些结果的出版物。提供了表达另外六个列表构建体的转基因系的靶基因转录水平以及针对与细胞壁结构(木葡聚糖和木质素成分)相关基因表达修饰的详细细胞壁分析。 的表达改变并未改变转基因植物中的木质素含量。同时沉默两个 对于降低G和S木质素单体及总木质素含量是必要的,但这会降低植物生长。
创建了一个用于生产抗性降低的植物的TP以及一个用于汇编这些植物数据的LIMS。虽然许多被纳入TP的基因产生了木质素或生物量含量未改变的转基因柳枝稷,但也鉴定出了一组具有提高木质纤维素生物燃料产量潜力的基因。针对木葡聚糖和木质素结构设计的转基因系的结果提供了BESC内产生的柳枝稷系可用信息类型的示例。本报告在开发协调的、大规模的、多机构反向遗传流程以改善作物性状时提供了有用信息。